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QoS adaptation in streaming 3D graphics for FAIRVIEW
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International Workshop on Network and Operating System Support for Digital Audio and Video archive
Proceedings of the 18th International Workshop on Network and Operating Systems Support for Digital Audio and Video table of contents
Braunschweig, Germany
DEMONSTRATION SESSION: Demonstrations table of contents
Pages 125-126  
Year of Publication: 2008
ISBN:978-1-60558-157-6
Authors
Shinya Yamamoto  Nara Institute of Science and Technology, Ikoma, Nara, Japan
Yoshihiro Murata  Nara Institute of Science and Technology, Ikoma, Nara, Japan
Naoki Shibata  Shiga University
Keiichi Yasumoto  Nara Institute of Science and Technology, Ikoma, Nara, Japan
Minoru Ito  Nara Institute of Science and Technology, Ikoma, Nara, Japan
Sponsors
: Technische Universität Braunschweig
SIGMULTIMEDIA: ACM Special Interest Group on Multimedia
: Simula Research Laboratory
Publisher
ACM  New York, NY, USA
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ABSTRACT

We have proposed FAIRVIEW, a framework for realizing 3D graphics-based interaction between mobile users in real world and remote network users. In order to realize FAIRVIEW in an ordinary wireless LAN and Internet environment, a QoS adaptation mechanism is essential. The QoS adaptation mechanism of FAIRVIEW regulates, for each user, update frequency of his/her observable objects depending on the importance values associated with regions of his/her sight within available bandwidth. In this demonstration, we show how our QoS adaptation mechanism changes the quality of each observable object as the user moves his/her sight.


REFERENCES

Note: OCR errors may be found in this Reference List extracted from the full text article. ACM has opted to expose the complete List rather than only correct and linked references.

 
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R. Ichikari, K. Kawano, A. Kimura, F. Shibata and H. Tamura: "Mixed Reality Pre-visualization and Camera-Work Authoring in Filmmaking," Proc. of 5th Int'l Symp. on Mixed and Augmented Reality, pp.239--240, (2006).
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Intel Research: Place Lab, http://www.placelab.org/.
 
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M. Kourogi and T. Kurata: "A method of personal positioning based on sensor data fusion of wearable camera and self-contained sensors," Proc. of IEEE Conf. on Multisensor Fusion and Integration for Intelligent Systems (MFI2003), pp.287--292, (2003).
 
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H. Nishikawa, S. Yamamoto, M. Tamai, K. Nishigaki, T. Kitani, N. Shibata, K. Yasumoto, and M. Ito: "UbiREAL: Realistic Smartspace Simulator for Systematic Testing," Proc. of the 8th Int'l Conf. on Ubiquitous Computing (UbiComp2006), (September 2006).


Collaborative Colleagues:
Shinya Yamamoto: colleagues
Yoshihiro Murata: colleagues
Naoki Shibata: colleagues
Keiichi Yasumoto: colleagues
Minoru Ito: colleagues